An array substrate including scan lines and data lines together defining pixel regions, common lines, and a defect is provided. At least one pixel region includes a storage capacitor having an upper electrode and a bottom electrode. Each said upper electrode is a portion of a pixel electrode. Said bottom electrode is a portion of one common line, and the defect is positioned in said storage capacitor. A cutting process is performed to divide said pixel electrode having said defect into a first portion and a second portion not connecting to each other, and to isolate a section of one of said common lines corresponding to the first portion from other portions of said common line. Said first portion of said pixel electrode is then electrically connected to one scan line, and said second portion is electrically connected to said other portions said common line corresponding to said second portion.
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8. A liquid crystal display panel, comprising:
an array substrate;
a plurality of scan lines and data lines disposed over said array substrate and together defining a plurality of pixel regions, and at least one of said pixel regions comprising a transistor, a pixel electrode electrically connected to a source/drain electrode of said transistor, a storage capacitor having an upper electrode and a bottom electrode, wherein each said upper electrode is a portion of said pixel electrode
a plurality of common lines, wherein said bottom electrode is a portion of one of said common lines;
a defect positioned in one of said storage capacitors and corresponding to one of said common lines;
wherein said pixel electrode comprises a first portion corresponding to said one of said storage capacitor including said defect and a second portion not connecting to each other, and a section of said one of said common lines corresponding to said first portion is isolated from other portions of said one of said common lines;
wherein said first portion of said pixel electrode is electrically connected to one of said scan lines; and
wherein said second portion is electrically connected to said common line corresponding to said second portion.
1. A method of repairing a defect in a liquid crystal display panel comprising:
providing an array substrate comprising:
a plurality of scan lines and data lines disposed over said array substrate and together defining a plurality of pixel regions, and at least one of said pixel regions comprising a transistor, a pixel electrode electrically connected to a source/drain electrode of said transistor, a storage capacitor having an upper electrode and a bottom electrode, wherein each said upper electrode is a portion of said pixel electrode;
a plurality of common lines, wherein said bottom electrode is a portion of one of said common lines; and
a defect positioned in said storage capacitor;
performing a cutting process to divide said pixel electrode having said storage capacitor including said defect into a first portion and a second portion not connecting to each other, and to isolate a section of one of said common lines corresponding to the first portion from other portions of said one of said common lines;
electrically connecting said first portion of said pixel electrode to one of said scan lines; and
electrically connecting said second portion to said other portions of said one of said common lines corresponding to said second portion.
2. The method of
3. The method of
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5. The method of
7. The method of
9. The liquid crystal display panel of
10. The liquid crystal display panel of
11. The liquid crystal display panel of
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This application is a division of application Ser. No. 11/622,452 filed on Jan. 11, 2007.
1. Field of the Invention
The present invention relates to a liquid crystal display panel and repairing method thereof, and more particularly, to a method able to repair bright dot defect or other pixel defect problem in an array substrate of a liquid crystal display panel.
2. Description of the Prior Art
A conventional liquid crystal display (LCD) panel normally includes a thin film transistor array substrate (array substrate), a color filter substrate (CF substrate) having a common electrode thereon disposed over the array substrate, and a liquid crystal layer interposed there between. Please refer to
The storage capacitor assists the pixel region 16 to operate normally, however, any processing defects or particles occurring in the storage capacitor may lead to malfunction of the storage capacitor. For instance, if a particle 24 unexpectedly falls into the storage capacitor region, the particle 24 may lead to a short-circuitry between the pixel electrode 22 and the common line 20. In such a case, the voltage of the pixel electrode 22 will be identical to the voltage of the common line 20. Since the common line 20 and the common electrode of the CF substrate usually have the same voltage, the voltage of the pixel electrode 22 and the voltage of the common electrode of the CF substrate will be identical. This fails the pixel region 16. Furthermore, if the LCD is a normally white (NW) type LCD, back light will pass through the liquid crystal layer and cause a bright dot defect because no voltage difference exists between the pixel electrode 22 and the common electrode. In addition to the particles, other defects such as a dielectric layer loss or a common line loss that makes the pixel electrode 22 and the common line 20 short-circuited will also cause the bright dot defect in an NW type LCD.
Accordingly, there is a need to provide a simply and effective repairing method of the pixel to solve the display problems due to particles or other defects.
It is an objective of the present invention to provide a liquid crystal display and repairing method thereof to solve the bright dot defect and other pixel defect problem.
It is another objective of the present invention to provide a liquid crystal display and repairing method which is easy to be implemented in the manufacture process.
According to an embodiment of the present invention, a method of repairing a defect in a liquid crystal display panel is provided. The method of repairing a defect in a liquid crystal display panel includes:
According to an embodiment of the present invention, a liquid crystal display panel is provided. The liquid crystal display panel includes:
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Please refer to
This embodiment illustrates a Cst on common type LCD, and thus a portion of each pixel electrode 42 overlaps each of the common line 40 in each pixel region 36 to form a storage capacitor region. In the storage capacitor region, the common line 40 and the pixel electrode 42 respectively serve as a bottom electrode and an upper electrode of the storage capacitor, and the dielectric layer 44 and the passivation layer 46 serve as a capacitor dielectric layer so as to from a storage capacitor in each pixel region 36.
However, in the manufacture process of the array substrate, due to unexpected reasons, defects may occur in the storage capacitor region. As shown in
Taking the loss defect (shown in
Sequentially, as shown in
Please refer to
Then, a cutting process is then performed to divide the pixel electrode 42 having the defect 48 into a first portion 421 substantially corresponding to the common line 40 and including the defect 48, a second portion 422, and a third portion 423 not connecting to each other. The first portion 421 also has two portions corresponding to and overlapping the two broken side portions 401 and 402 of the common line 40. Subsequently, the second portion 422 is electrically connected to the scan line 32, and the third portion 423 is electrically connected to another scan line 32 through the connecting bridge 34a by laser welding, for instance. In addition, the first portion 421 of the pixel electrode 42 is electrically connected to the broken common line 40 through respectively welding the broken common line 40 and the first portion 421 together at the point H of the first broken side portion 401 and at the point I of the second broken side portion 402.
In this embodiment, the first portion 421 of the pixel electrode 42 is isolated from the second portion 422 and the third portion 423 in the cutting process, and electrically connected to the common line 40 through the laser welding process. The electrical connection of the first portion 421 and the common line 40 enables the first portion 421 to serve as a substitute circuit. Accordingly, the bright dot defect is eliminated by electrically connecting the second portion 422 and the third portion 423 to the corresponding scan lines 32, and the common line loss is repaired by electrically connecting the broken common line 40 with the first portion 421.
Please refer to
The auxiliary electrode 64 disposed between the pixel electrode 62 and the scan line 52 in each pixel region 56 and is electrically connected to the corresponding pixel electrode 62. Therefore, the pixel electrode 62 and the auxiliary electrode 64 serve as an upper electrode of the storage capacitor, and a portion of the scan line 52 serves as a bottom electrode.
In a normal case, the auxiliary electrode 64 is not electrically connected to the data line 54. However, due to some unexpected factors in the manufacture process of array substrate, the auxiliary electrode 64 and the data line 54 may be short-circuited, thereby forming a defect 66 known as M2 residue as shown in
In this embodiment, a cutting process e.g. a laser cutting process is performed to divide the pixel electrode 62 into a first portion 621 having the defect 66, and a second portion 622 not connecting to each other. Subsequently, the second portion 622 is electrically connected to the scan line 52 by laser welding at point K, for instance. Since the first portion 621 having the defect 66 is isolated from the second portion 622, and the second portion 622 is electrically connected to the scan line 52, a voltage difference will exist between the second portion 622 of the pixel electrode 62 and the common electrode of the CF substrate (not shown) and the effect of the defect 66 can be eliminated.
Please refer to
Subsequently, a cutting process is performed to divide the pixel electrode 42 having the defect 48 into a first portion 421 including the defect 48, and a second portion 422 which is substantially like a U-shaped structure, not connecting to each other. In the cutting process, please note that the common line 40 is also cut so that one section of the common line 40 having the defect 48 is isolated from other sections of the common line 40.
Following that, the first portion 421 of the pixel electrode 42 is electrically connected to one of the scan lines 32 through welding at a point L, and the second portion 422 of the pixel electrode 42 is electrically connected to the common line 40 corresponding to the second portion 422 through respectively welding at both two sides of the second portion 422 corresponding to the two terminals of the U-shaped structure, such as at the points M and N. In this embodiment, the first portion 421 of the pixel electrode 42, which is isolated from the second portion 422, is electrically connected to the scan line 32 to eliminate the bright dot defect. On the other hand, the second portion 422 is electrically connected to the common line 40 and serves as a substitute circuit of the section of the common line 40 having the defect 48. Consequently, the pixel regions 36 using the same common line 40 can operate normally.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
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